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Gene delivery to Nile tilapia cells for transgenesis and the role of PI3K-c2α in angiogenesis

机译:基因传递给尼罗罗非鱼细胞进行转基因以及PI3K-c2α在血管生成中的作用

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摘要

Microinjection is commonly performed to achieve fish transgenesis; however, due to difficulties associated with this technique, new strategies are being developed. Here we evaluate the potential of lentiviral particles to genetically modify Nile tilapia cells to achieve transgenesis using three different approaches: spermatogonial stem cell (SSC) genetic modification and transplantation (SC), in vivo transduction of gametes (GT), and fertilised egg transduction (ET). The SC protocol using larvae generates animals with sustained production of modified sperm (80% of animals with 77% maximum sperm fluorescence [MSF]), but is a time-consuming protocol (sexual maturity in Nile tilapia is achieved at 6 months of age). GT is a faster technique, but the modified gamete production is temporary (70% of animals with 52% MSF). ET is an easier way to obtain mosaic transgenic animals compared to microinjection of eggs, but non-site-directed integration in the fish genome can be a problem. In this study, PI3Kc2α gene disruption impaired development during the embryo stage and caused premature death. The manipulator should choose a technique based on the time available for transgenic obtainment and if this generation is required to be continuous or not.
机译:显微注射通常用于实现鱼类转基因。然而,由于与该技术有关的困难,正在开发新的策略。在这里我们评估慢病毒颗粒使用三种不同方法对尼罗罗非鱼细胞进行遗传修饰以实现转基因的潜力:精原干细胞(SSC)基因修饰和移植(SC),体内配子转导(GT)和受精卵转导( ET)。使用幼虫的SC方案可产生持续产生修饰精子的动物(80%的动物具有77%的最大精子荧光[MSF]),但是这是一项耗时的方案(尼罗罗非鱼的性成熟是在6个月大时实现的) 。 GT是一种较快的技术,但改良的配子生产是暂时的(70%的动物的MSF为52%)。与显微注射卵相比,ET是获得镶嵌转基因动物的一种更容易的方法,但是鱼基因组中的非定点整合可能是一个问题。在这项研究中,PI3Kc2α基因破坏在胚胎期损害发育并导致过早死亡。操纵者应根据可用于转基因获得的时间以及是否需要连续产生这一代来选择一种技术。

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